Title :
Fabrication of an epoxy based multi-layer bio-fluidic dermal patch
Author :
Gadre, A.P. ; Garra, J.A. ; Nijdam, A.J. ; Monica, A.H. ; Cheng, M.C. ; Luo, C. ; Schneider, T.W. ; Long, T.J. ; White, R.C. ; Paranjape, M. ; Currie, J.F.
Author_Institution :
Dept. of Phys., Georgetown Univ., Washington, DC, USA
Abstract :
A multi-layer fabrication process using SU8 has been demonstrated for the realization of a robust dermal patch, called the Bio-Fluidic Integrable Transdermal (B-FIT) Microsystem. This device, which is worn in contact with the skin, samples and measures concentrations of bio-molecules such as glucose. The functional substructures of the device include fluidic reservoirs and capillaries, a micro heater element, and a calorimetric detection membrane. The heater elements are used to thermally ablate tiny pores through the surface layer of dead skin, allowing for easy diffusion of normally trapped bio-molecules to the skin surface. The capillaries and fluid containing reservoirs assist in the transport of bio-molecules from the skin surface to the detection patch situated on top of the device. The device offers the advantages of design flexibility, simplicity of fabrication and the integration of metals with polymers. Highly aligned structures and good adhesion between metals and cured SU8 layers have been achieved. A promising dry release process using Teflon has been developed for the removal of the device from a supporting glass substrate used during fabrication. This paper presents the wafer-scale fabrication and characterization of prototype B-FIT devices.
Keywords :
adhesion; biodiffusion; metallisation; microfluidics; multilayers; photoresists; polymer films; porosity; skin; sputter etching; wafer-scale integration; adhesion; biodiffusion; biomolecules concentration; calorimetric detection membrane; cured SU8 layers; dead skin surface layer; design flexibility; dry release process; epoxy based multilayer bio-fluidic dermal patch; fluidic capillaries; fluidic reservoirs; glass substrate; glucose; microheater element; prototype bio-fluidic integrable transdermal microsystem; thermal ablation; tiny pores; wafer-scale fabrication; Adhesives; Biomembranes; Dermis; Fabrication; Glass; Polymers; Reservoirs; Robustness; Skin; Sugar;
Conference_Titel :
TRANSDUCERS, Solid-State Sensors, Actuators and Microsystems, 12th International Conference on, 2003
Conference_Location :
Boston, MA, USA
Print_ISBN :
0-7803-7731-1
DOI :
10.1109/SENSOR.2003.1215596